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Evaluation of Facial Expression Recognition by a Smart Eyewear for Facial Direction Changes, Repeatability, and Positional Drift

机译:通过智能眼镜评估面部表情的面部方向变化,可重复性和位置漂移

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This article presents a novel smart eyewear that recognizes the wearer's facial expressions in daily scenarios. Our device uses embedded photo-reflective sensors and machine learning to recognize the wearer's facial expressions. Our approach focuses on skin deformations around the eyes that occur when the wearer changes his or her facial expressions. With small photo-reflective sensors, we measure the distances between the skin surface on the face and the 17 sensors embedded in the eyewear frame. A Support Vector Machine (SVM) algorithm is then applied to the information collected by the sensors. The sensors can cover various facial muscle movements. In addition, they are small and light enough to be integrated into daily-use glasses. Our evaluation of the device shows the robustness to the noises from the wearer's facial direction changes and the slight changes in the glasses' position, as well as the reliability of the device's recognition capacity. The main contributions of our work are as follows: (1) We evaluated the recognition accuracy in daily scenes, showing 92.8% accuracy regardless of facial direction and removal/remount. Our device can recognize facial expressions with 78.1% accuracy for repeatability and 87.7% accuracy in case of its positional drift. (2) We designed and implemented the device by taking usability and social acceptability into account. The device looks like a conventional eyewear so that users can wear it anytime, anywhere. (3) Initial field trials in a daily life setting were undertaken to test the usability of the device. Our work is one of the first attempts to recognize and evaluate a variety of facial expressions with an unobtrusive wearable device.
机译:本文介绍了一种新颖的智能眼镜,该眼镜可以识别佩戴者日常情况下的面部表情。我们的设备使用嵌入式光反射传感器和机器学习来识别佩戴者的面部表情。我们的方法着眼于佩戴者改变面部表情时眼睛周围的皮肤变形。使用小型光反射传感器,我们可以测量面部皮肤表面与嵌入眼镜架中的17个传感器之间的距离。然后,将支持向量机(SVM)算法应用于传感器收集的信息。传感器可以覆盖各种面部肌肉运动。此外,它们小巧轻便,可以集成到日常使用的眼镜中。我们对设备的评估显示出了佩戴者面部方向变化和眼镜位置的微小变化对噪声的鲁棒性,以及设备识别能力的可靠性。我们的工作的主要贡献如下:(1)我们评估了日常场景中的识别准确性,无论面部方向和拆卸/重新安装如何,其显示准确度均为92.8%。我们的设备可以识别面部表情,其重复精度为78.1%,如果出现位置漂移,则精度为87.7%。 (2)我们在设计和实现设备时考虑了可用性和社会接受度。该设备看起来像传统的眼镜,因此用户可以随时随地佩戴。 (3)在日常生活中进行了初步的现场试验,以测试设备的可用性。我们的工作是使用不引人注目的可穿戴设备识别和评估各种面部表情的首次尝试之一。

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